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I need to transform a list into dictionary as follows. The odd elements has the key, and even number elements has the value.

x = (1,'a',2,'b',3,'c') -> {1: 'a', 2: 'b', 3: 'c'}
def set(self, val_): 
        i = 0 
        for val in val_: 
            if i == 0: 
                i = 1 
                key = val 
            else: 
                i = 0 
                self.dict[key] = val 

A better way to get the same results?

ADDED

i = iter(k)
print dict(zip(i,i))

seems to be working

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Your method using zip(i,i) is equivalent to Ignacio's answer (except for leaving i around afterward). –  gnibbler Apr 8 '10 at 2:53
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5 Answers

up vote 12 down vote accepted
dict(x[i:i+2] for i in range(0, len(x), 2))
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dict(zip(*[iter(val_)] * 2))
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Here are a couple of ways for Python3 using dict comprehensions

>>> x = (1,'a',2,'b',3,'c')
>>> {k:v for k,v in zip(*[iter(x)]*2)}
{1: 'a', 2: 'b', 3: 'c'}
>>> {x[i]:x[i+1] for i in range(0,len(x),2)}
{1: 'a', 2: 'b', 3: 'c'}
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>>> x=(1,'a',2,'b',3,'c')
>>> dict(zip(x[::2],x[1::2]))
{1: 'a', 2: 'b', 3: 'c'}
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1  
Using timeit module, this seems to be fastest method also, so far anyway :) –  Mark Tolonen Apr 8 '10 at 3:33
    
Correction, gnibbler's dict comps are both faster on my system (2.58us,3.51us), and mine got slower on Python3.1.2 (4.75us vs. Python2.6.5 4us). –  Mark Tolonen Apr 8 '10 at 3:37
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x = (1,'a',2,'b',3,'c') 
d = dict(x[n:n+2] for n in xrange(0, len(x), 2))
print d
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Yay I'm the fastest!! :D –  nosklo Apr 8 '10 at 2:24
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